salcio Hi,
I think I found quite nice soution - no recursion, no arrays. We iterate only once through whole list.
int GetNode(Node *head,int positionFromTail) { int index = 0; Node* current = head; Node* result = head; while(current!=NULL) { current=current->next; if (index++>positionFromTail) { result=result->next; } } return result->data; }
talluri can you explain why your code works ??
salcio yeah. so we have two pointers. one is a iteration pointer and the other will be behind it by requested number of elements. so for example lets say we need to get value of 3rd element from tail. we start incrementing second pointer after 3rd element alongside with iteration pointer. When iteration pointer gets to the end(tail) second pointer is going to be pointing to 3rd element from it. which is our answer. hope that helps.
harrish96 i wasnt able to understand some of your code, but it gave me an idea which worked , so thanks.
changhaoran144 Think about two cars: C(current) and R(result). They have the same speed and C is in fromt of R. The distance between them is the value of positionFromTail. So when C arrive at the ending point, where is R? Note that their distance is "positionFromTail", the position of R is the position from tail.
callniladri_pro Nice explanation.
shuklaaakash75 well done
Sufiyan Amazing! I did not think about it in this way. This is a good solution and easy to understand. Thanks.
israa_samkari How did you become like that? i mean how you get solve it like this??! this is crazy man, i wanna some day become like you :)
tvthanh95 thanks.
ErikTest Clever!
tanmayub Awesome..!! Thanks..!! :)
sandymark0346 I know this is a bit odd, but I understand what your code is doing, but not why it works?
mudit_goel1421 An intuitive explanation would be: just imagine the two pointers, current and result as sprinters. If each node represented a milestone and let it takes for them to move between consecutive stones 1 second, thus both have equal speeds(imagine index represents time passage starting from index = 0 when refree fired his gun.). Hence in each iteration, the two would move from starting point to next adjacent milestone. When current reaches the last milestone, result must be at positionfromtail milestone and because both move with equal speeds it means that current must have a headstart of positionfromtail seconds over result. Clearly, result must start moving (result=result->next) only after time greater than positionfromtail (index++>positionfromtail).
DarshakMehta I feel like one is exactly after the other i.e. gap between both are always 1. Or cant really understand how it worked. Really... sorry if I bothering you, but havent understood how it works. Help me please...
geuis Ok I was confused by this too and literally when I woke up this morning I understood how it works. Here is a version of the answer written in Python that should be easier to understand.
def GetNode(head, position): trailingNode = head len = 0 while (head): if (len > position): trailingNode = trailingNode.next len += 1 head = head.next return trailingNode.data
The mental image that came to me is dragging a rope of a certain length. (Remember, this was a dream.)
In a simple example, suppose we have the list
1 2 3 4 5and we want to get position 3 from the end.As we advance to each new node, we incremenent the
lenvalue.When
lenis finally greater than thepositionvalue, that's the length of our rope. In this case, the length of the rope is 3 (3 nodes).As
headkeeps advancing through the list, we start "dragging the rope" by advancingtrailingNodethrough the list behindhead.Now that
lenis greater than the position, we start advancingtrailingNodethrough the same list, but at 3 node positions behindhead.Finally, when
headreaches the end of the listtrailingNodeis now at the position of list length minus position.1 2 3 4 5 < head ^ trailingNode
subbuvenk Nice explanation :D
RJ_dot_PY Awesome!!
keta_thatte easy and awsome!
ltumuhairwe [deleted]
AMITAGA Hi,
Although this is correct solution but this given running time complexity is O(n^2)
Better Solution: Algorithm 1.find the length of the linkedList by iteraing it. Let length be L. 2.Nth node from the last of the linkedList is L-(N+1) node from the head.
Time Complexity O(2n) ~ O(n)
andrewseaman35 Salcio's solution will only have a complexity of O(n). It is actually quicker than your solution, which will iterate through the list twice. Instead, Salcio's will only iterate through it once.
The while loop will run
currentthrough the entire list and stop once it has reached the end.
whoiscris Ok, kids, let's learn some Complexity 101!
both algorithms are linear, i.e. O(n).
Even the constants in their linearity are the same, because both iterate through the same number of elements!
Still confused ?
denizsayin You are actually right! The two algorithms are almost the same. The only difference is that in salcio's algorithm the pointer which is behind is advanced at the same time as the main pointer, while in AMITAGA's solution the same is done AFTER that. I had not noticed that. Mind = Blown... Thank you!
Piyushpky Haha Mr.Overconfident! :D Both algos are linear but one is O(2n) and the other is of O(N).Go do work on your basics. KID.
Yeetesh I think salcio's solution is better as it is O(n) and not O(2n). Basic step here is checking the if condition and not the statement inside the if statement.
tpaktopa Loop is much slower then Value assigning. Debug with Disassemmbler on, and see the difference. Disassemble it, and see, that :
- Value assiging is 1 or 3 CPU cycles ( depends, is variable in CPU register or in memory. Local variables are usually in CPU register, and it tooks 1 CPU cycle to assign)
Loop is 6 to 20+ CPU cycles - depnds, is it simple while, which actually internal is IF and JUMP operands, or it's a FOR, or even slower FOREACH
So,
while(condition) { a = b; if(condition) c = b; }
is much, much faster then
while(condition) { a = b; index++; } while(index-- > 0) c = b;
Still, there is one small issue with SALCIO's code.
if (index++ > positionFromTail) result=result->next;
index++ (increment) is unneeded, after once index is bigger then positionFromTail. Though increment with ++ is only 1 CPU cycle ( INC operator), i with do it like:
if (index > positionFromTail) result=result->next; else index++;
hwfbcisod I feel like your comment is underappreciated.
SohanReddy Clear and clever!
karanth Brilliant! :)
s_sagarsen1 fantastic
jimit_silenthill Excellent!! approach which is efficient as no need for recursion or first iterate till end to get count of nodes.
aktersuriya Nice logic !!
iamfrankenstein Thanks Salcio, that's a great solution.
anil_alanka Simple and Clever!!
tanmayub [deleted]
etayluz Simple and elegant answer!
Here's a recursive solution just for giggles:
int GetNode(Node *head, int positionFromTail) { int data; if (head->next == NULL) { // store the position in the data variable data = head->data; head->data = 0; // return the data return data; } data = GetNode(head->next, positionFromTail); if (head->next->data == positionFromTail) { head->data = head->next->data; return data; } else { data = head->data; head->data = head->next->data + 1; return data; } }sandeepsr21 I Have seen most of your solutions. They are just simple and elegant.
DHARIK if (head->next->data == positionFromTail) In this loop how the data of the node comparing with the index;Could u explain me;
kedar_nadkarny I know right! wth?
EasyPancakes [deleted]
mukesh9871 Could you/any one please explain. How it is working. I am not able to decipher it.
mukesh9871 I deciphered it. Thanks for it amazing solution.
vsvamsi Recursions are misreably hard...need to practise more...nevertheless excellent solution
abhinav_90 i was thinking if i can solve it through recursion and ended up concluding may be i can't because i have to somehow need a variable which holds positionfromlast value of each node and i can't embbed that info in return value since return has diff purpose in this question.
I actually giggled when i saw that you destroyed who list to return just one value :D
tanmay777 I was actually stuck at the same situation of yours for an hour xD. I wonder how this problem can be done recursively without destroying the linked list. I know its possible, as any program which can be written iteratively can be also written recursively and vice versa.
peterkirby A different recursive solution. Uses pass-by-reference.
int GetNode(Node *head, int & positionFromTail) { if (head == NULL) return 0; int answer = GetNode(head->next, positionFromTail); if (positionFromTail == -1) { return answer; } else { --positionFromTail; return head->data; } }vishwasjha17 hey!why did you pass positionFromTail as a refrence
zzmmss because u won't know where is the tail until u iterate a whole LinkedList. if we have a length 5 list and want to get positionFromTail 2, we will go this way: 4 3 2 1 0 1 2
gundamunit If you always have to corrupt the data you stored in your list to get the data stored in some position, I guess it's a on time use method.
hockeyshark315 How about this recursive solution?
int length,answer; int GetNode(Node head,int n) { genNodeHelper(head,n,0); return answer; } void genNodeHelper(Node head, int n, int index){ if(head == null) length = index-1; else genNodeHelper(head.next, n, index+1); if(length - n == index) answer = head.data; }
GIWMCoder @hockeyshark315, excellent recursive solution! Surprised that this answer hadn't received any upvote(s).
tpaktopa Recursive call is much much slower, then simple while cycle. Still, your sollution is OK.
srjkmr619 Your code gives the right answer, but it changes the data of every nodes in the lists.What good is this function if i cannot preserve my original linked list?
vijay96 Look at the code carefully Mr.Suraj kumar,I have simply traversed the list..
int GetNode(Node *head,int positionFromTail)
{
int index=0; struct Node *temp=head,*result=head; while(temp!=NULL){ temp=temp->next; if(index++ > positionFromTail) result=result->next; } return result->data;}
srjkmr619 Man...i have referred to etayluz's code,not yours.
srjkmr619 [deleted]
cray1 This is destructive to the original list however. It "solves the problem", but you better not need that list afterwards.
sbsatter The above code segment will modify the original List in the memory, won't it?
bhuvnesh_kumar @etayluz i can't understand this solution could you please explain.
mudit_goel1421 [deleted]hjkajh That's mean, the result pointer is later than current pointer positionFromTail positions. When current is the tail, the result will be positionFromTail positions from tail!!!
ch_krishnapriya I can explain mathematically here. Suppose we need to find 3nd postion from tail. This means it is (n-3)+1 position from head(where n is total number of nodes in list)
We dont have n given in our problem statement
while loop is going for n times So what index variable does here it starts counting after 3. Then obviously it counts n-3. Thats the element we need.
aqueiroz The way you solved this the best one in my opinion. Congratulations!!!
CVitthal Nice
RobotMa Really nice logic!
sheeze_pk nice logic :)
freddGO Clever
cansay Excellent work!!
jonmcclung very clever!
_kuldeep_ Elegant solution... Bravo
bks4line Brilliant solution!
alejandro33 Really nice congrats!!
jja23 How did you come up with this? Beautiful.
Minyi Very smart solution !
c650Alpha very clever. I adapted this and it all worked out!
sandeepsr21 Awesome.
maximshen 1) Similar idea of using two points to detect whether there is any cycle or not.
2) Also, pay attention to the differece between C++ and Java about their operator priority. C++ (index++>positionFromTail) equals to (++index>positionFromTail) !
bastianl7 Nice Solution. Here is the same idea in python:
def GetNode(head, position): tracked = head while position > 0: head = head.next position -= 1 while head.next: head = head.next tracked = tracked.next return tracked.data
Vinprogress wow!!
kvpratama Brilliant!!
Here is my code in java based on your algorithm.
int GetNode(Node head, int n) { Node pointer = head; int pointerPosition = 0; while (head.next != null){ head = head.next; if (pointerPosition < n){ pointerPosition++; }else { pointer = pointer.next; } } return pointer.data; }mike800 That's brilliant, salcio! I'm surprised their test case allow passing with double traversal.
arohwedd Ahhh this is great. Smart person!
arjun1321 very clever solutions
ved57 I hate to see solutions in the Discussions page. But this one is an exception. Clever and simple. Persons who get the solution correct at first go and miss this post are going to be unlucky...
doanhuunoi awesome, you're so smart!
vijay96 nice idea...
jogi9045 void printNthFromLast(struct node* head, int n) { static int i = 0; if (head == NULL) return; printNthFromLast(head->next, n); if (++i == n) printf("%d", head->data); }
rcashie Very nice, doing (n - positionFromTail) iterations from the head by ignoring the first (positionFromTail) when counting all (n).
navrattanocp there is no need to declare current : Java Solution :
int GetNode(Node head,int n) { Node result = head; int i = 0; while(head != null) { head = head.next; if(i++ > n) { result = result.next; } } return result.data;
}
kev01 Salcio, your solution is excellent, but you can simplify the code even further by not maintaining a separate "current" pointer.
int GetNode(Node *head,int positionFromTail) { Node* tortoise = head; int index = 0; while (head->next) { head = head->next; if (++index > positionFromTail) { tortoise = tortoise->next; } } return tortoise->data; }
simran250122 Awesome :)
nike3801 Awesome!! I really am implressed by your logic.
nm1511 oh dam son
k_shreyans1 really good one
themast3r Smart, heck smart!
samuu Salute to this solution!!! awesome!!
meecheck [deleted]jsu317 Beautiful solution
hackersundar Nice approach. But, we dont need current pointer here. This solution works without that.
Python code (same approach)def GetNode(head, position): index = 0 result = head while(head.next != None): head = head.next index += 1 if(index > position): result = result.next return result.data
jae_duk_seo this is really good solution.
parisgeller When you think about it, its the same thing as explained in the editorial combined inside one loop.
bsandeepgupta Fantastic :)
raj_yadav29oct super
harpz_ Awesome..
zjuPeco it's really an amazing way to solve this problem!
ajinkya_ghonge Awesome logic
shuklaaakash75 thanx
holy_monk Kudos Dude! smart thinking!
Vin436 simple java solution based on this algorithm
int GetNode(Node head,int n) { // This is a "method-only" submission. // You only need to complete this method. Node curr = head; for(int i = 0; i<n;i++){ head = head.next; } while(head.next!=null){ head=head.next; curr=curr.next; } return curr.data; }
ldai100 ingenious.
telma92 kudos! very clever solution.
zzmmss INCREDIBLE!!
daimengchen shorter
int GetNode(Node *head,int positionFromTail) { Node *p = head; while(head) { if(positionFromTail < 0) p = p->next; positionFromTail--; head = head->next; } return p->data; }
tanmay777 How are you people so smart -.-
SanthoshGotur great solution
24_riddhi Awesome man!
fernando_luz Great explanation. I rewrite the idea in the following way
int GetNode(Node *head,int positionFromTail) { // walks in the liked list Node *iter = head; for (int i=0; i <= positionFromTail; ++i){ iter = iter->next; } Node *result=head; while(iter != NULL){ iter = iter->next; result = result->next; } return result->data; }
ME_170070246 Thank you for the code it's really a nice one.
dhrjsoni01 superb logic .
khyati398 Incredible,it's very smart solution i just want to ask you that how did you think of this solution ,can you tell me the strategy behind this, if you could than it would be really kind of you :) :) :)
xdavidliu note that this is completely equivalent to iterating twice through the list with a single pointer, since we are iterating two pointers.
shivamfromkanpur [deleted]
perfectcodder Nice idea !!
sharonalexander1 Amazing solution! I would have never thought like this.
lokesh1411 nice
RodneyShag O(1) space complexity Java Iterative solution.
From my HackerRank solutions.
I use the "runner" technique. We make a runner pointer move k elements into the list. Then we create a curr pointer. We move both pointers 1 step at a time until runner is at the end. When this happens, curr will be at the kth to last element.
Runtime: O(n)
Space Complexity: O(1)int GetNode(Node head, int k) { Node curr = head; Node runner = head; /* Move runner into the list by k elements */ for (int i = 0; i < k; i++) { runner = runner.next; } /* Move both pointers */ while (runner.next != null) { curr = curr.next; runner = runner.next; } return curr.data; }
Let me know if you have any questions.
sandy00 But we start from tail position
i am failed to understand this.. Please explain
RodneyShag Hi. We start from the head position, not the tail. I basically make 1 pointer walk k elements into the list. At the beginning of the while loop, we have 1 pointer at the head of the list and 1 pointer k elements into the list. Now, we move both pointers 1 step at a time. When the runner pointer (the pointer that was inside the list) reaches the end of the list, that means we have our other pointer reach the kth-to-last element.
If this still doesn't make sense, I recommend drawing a linked list with paper and pencil and walking through the code with it to better visualize it.
onuremreerol Here is another clean and tidy solution in java. If you have any question, feel free to ask.
int GetNode(Node head,int n) { Node temp = head; for (int i = 0; head.next != null; i++) { head = head.next; if ( i >= n) temp = temp.next; } return temp.data; }
bakaitBaalak Awesome and simple logic.
sirikisaikiran Can you tell me what i>=n does in your if statement.
onuremreerol It counts the position. We know that we need nth position from the tail. When we reach the tail we temp must be the tail-nth element. So we pass first nth element with this comparison so that temp always goes nth element behind current position. In these code head behaves as current.
sirikisaikiran Thanks a lot
BADLANI_S_5800 simple answer :)
int GetNode(Node head,int n) {
Node cu = head ; Node pu = head; int p =0; while (cu != null){ cu = cu.next; p++; } while (p-n>1){ pu = pu.next; p--; } return pu.data ;}
__spartax hii friends this is my solution
def GetNode(head, position): stk = [] t = head while t: stk = [t.data] + stk t = t.next return stk[position]
haotie a new different idea!
bastianl7 instead of prepending to the array, you can also do this:
def GetNode(head, position): out = [] while head: out.append(head.data) head = head.next return out[-(position + 1)]
bastianl7 yes although prepends to lists can be expensive! See here: http://stackoverflow.com/a/7777034
__spartax thanks bro
kakyoin01 Straightforward, somewhat efficient iterative solution in JavaScript using an array as a stack:
function getNodeValue(head, position) { var stack = []; var curNode = head; while(curNode) { stack.push(curNode.data); curNode = curNode.next; } while(position) { stack.pop(); position--; } return stack.pop(); }
tbird234 My solution: Iterates through list twice. Solution below is better :) int GetNode(Node head,int n) { // This is a "method-only" submission. // You only need to complete this method. Node currentNode = head; int index = 0; while (currentNode.next != null){ currentNode = currentNode.next; index ++; } currentNode = head; for(int i = 0; i <index-n; i++){ currentNode = currentNode.next; } return currentNode.data; }
shuklayash int getNode( SinglyLinkedListNode * head , int positionFromTail) {
SinglyLinkedListNode * cur = head; SinglyLinkedListNode *prev =head; while(positionFromTail){ cur=cur->next; positionFromTail--; } while(cur!=NULL){ prev=prev->next; cur=cur->next; } return prev->data;}
yaohui_zeng Here is my py3 solution with two pointers: 'slow' and 'fast' with distance being 'position'. We then move the two simultaneously until 'fast' reaches the tail node. Then 'slow' points to the node needed.
def GetNode(head, position): if head == None: return None slow, fast = head, head i = 0 while i < position: fast = fast.next i += 1 while fast.next: fast = fast.next slow = slow.next return slow.data
sid001 My Java Solution
int GetNode(Node head,int n) { Node curr1 = head; int count = 0; //First count number of elements in linkedlist while(curr1.next != null) { curr1 = curr1.next; count++; } //calculate position from beginning int new_pos = count - n; //Traverse LL till reach the node while(new_pos != 0) { head = head.next; new_pos--; } return head.data; }
JustBrokkoly static int getNode(SinglyLinkedListNode head, int positionFromTail) { if(head==null) return 0; SinglyLinkedListNode start = head; int count = 0; while(start.next!=null){ start=start.next; count++; } int c = count-positionFromTail; start=head; while(c!=0){ start=start.next; c--; } return start.data; }
_Sheetal thanks!
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